Lee Jung-Hoon, Siegelman Rebecca L, Maserati Lorenzo, Rangel Tonatiuh, Helms Brett A, Long Jeffrey R, Neaton Jeffrey B
Molecular Foundry , Lawrence Berkeley National Laboratory , Berkeley , California 94720 , USA . Email:
Department of Physics , University of California , Berkeley , California 94720 , USA.
Chem Sci. 2018 May 23;9(23):5197-5206. doi: 10.1039/c7sc05217k. eCollection 2018 Jun 21.
The family of diamine-appended metal-organic frameworks exemplified by compounds of the type mmen-M(dobpdc) (mmen = ,'-dimethylethylenediamine; M = Mg, Mn, Fe, Co, Zn; dobpdc = 4,4'-dioxidobiphenyl-3,3'-dicarboxylate) are adsorbents with significant potential for carbon capture, due to their high working capacities and strong selectivity for CO that stem from a cooperative adsorption mechanism. Herein, we use first-principles density functional theory (DFT) calculations to quantitatively investigate the role of mmen ligands in dictating the framework properties. Our van der Waals-corrected DFT calculations indicate that electrostatic interactions between ammonium carbamate units significantly enhance the CO binding strength relative to the unfunctionalized frameworks. Additionally, our computed energetics show that mmen-M(dobpdc) materials can selectively adsorb CO under humid conditions, in agreement with experimental observations. The calculations further predict an increase of 112% and 124% in the orientationally-averaged Young's modulus and shear modulus , respectively, for mmen-Zn(dobpdc) compared to Zn(dobpdc), revealing a dramatic enhancement of mechanical properties associated with diamine functionalization. Taken together, our calculations demonstrate how functionalization with mmen ligands can enhance framework gas adsorption and mechanical properties.
以mmen-M(dobpdc)型化合物(mmen = N,N'-二甲基乙二胺;M = Mg、Mn、Fe、Co、Zn;dobpdc = 4,4'-二氧代联苯-3,3'-二羧酸酯)为代表的含二胺金属有机骨架材料家族是具有显著碳捕获潜力的吸附剂,这归因于它们的高工作容量以及源于协同吸附机制的对CO的强选择性。在此,我们使用第一性原理密度泛函理论(DFT)计算来定量研究mmen配体在决定骨架性质方面的作用。我们经范德华校正的DFT计算表明,相对于未官能化的骨架,氨基甲酸铵单元之间的静电相互作用显著增强了CO的结合强度。此外,我们计算的能量学结果表明,mmen-M(dobpdc)材料在潮湿条件下能够选择性吸附CO,这与实验观察结果一致。计算进一步预测,与Zn(dobpdc)相比,mmen-Zn(dobpdc)的取向平均杨氏模量和剪切模量分别增加112%和124%,这揭示了与二胺官能化相关的机械性能的显著增强。综上所述,我们的计算证明了用mmen配体进行官能化如何能够增强骨架的气体吸附和机械性能。